1 //===-- llvm/CodeGen/DwarfDebug.cpp - Dwarf Debug Framework ---------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file contains support for writing dwarf debug info into asm files. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "DwarfDebug.h" 15 #include "ByteStreamer.h" 16 #include "DIEHash.h" 17 #include "DebugLocEntry.h" 18 #include "DwarfCompileUnit.h" 19 #include "DwarfExpression.h" 20 #include "DwarfUnit.h" 21 #include "llvm/ADT/STLExtras.h" 22 #include "llvm/ADT/Statistic.h" 23 #include "llvm/ADT/StringExtras.h" 24 #include "llvm/ADT/Triple.h" 25 #include "llvm/CodeGen/DIE.h" 26 #include "llvm/CodeGen/MachineFunction.h" 27 #include "llvm/CodeGen/MachineModuleInfo.h" 28 #include "llvm/IR/Constants.h" 29 #include "llvm/IR/DIBuilder.h" 30 #include "llvm/IR/DataLayout.h" 31 #include "llvm/IR/DebugInfo.h" 32 #include "llvm/IR/Instructions.h" 33 #include "llvm/IR/Module.h" 34 #include "llvm/IR/ValueHandle.h" 35 #include "llvm/MC/MCAsmInfo.h" 36 #include "llvm/MC/MCSection.h" 37 #include "llvm/MC/MCStreamer.h" 38 #include "llvm/MC/MCSymbol.h" 39 #include "llvm/Support/CommandLine.h" 40 #include "llvm/Support/Debug.h" 41 #include "llvm/Support/Dwarf.h" 42 #include "llvm/Support/Endian.h" 43 #include "llvm/Support/ErrorHandling.h" 44 #include "llvm/Support/FormattedStream.h" 45 #include "llvm/Support/LEB128.h" 46 #include "llvm/Support/MD5.h" 47 #include "llvm/Support/Path.h" 48 #include "llvm/Support/Timer.h" 49 #include "llvm/Support/raw_ostream.h" 50 #include "llvm/Target/TargetFrameLowering.h" 51 #include "llvm/Target/TargetLoweringObjectFile.h" 52 #include "llvm/Target/TargetMachine.h" 53 #include "llvm/Target/TargetOptions.h" 54 #include "llvm/Target/TargetRegisterInfo.h" 55 #include "llvm/Target/TargetSubtargetInfo.h" 56 using namespace llvm; 57 58 #define DEBUG_TYPE "dwarfdebug" 59 60 static cl::opt<bool> 61 DisableDebugInfoPrinting("disable-debug-info-print", cl::Hidden, 62 cl::desc("Disable debug info printing")); 63 64 static cl::opt<bool> UnknownLocations( 65 "use-unknown-locations", cl::Hidden, 66 cl::desc("Make an absence of debug location information explicit."), 67 cl::init(false)); 68 69 static cl::opt<bool> 70 GenerateGnuPubSections("generate-gnu-dwarf-pub-sections", cl::Hidden, 71 cl::desc("Generate GNU-style pubnames and pubtypes"), 72 cl::init(false)); 73 74 static cl::opt<bool> GenerateARangeSection("generate-arange-section", 75 cl::Hidden, 76 cl::desc("Generate dwarf aranges"), 77 cl::init(false)); 78 79 namespace { 80 enum DefaultOnOff { Default, Enable, Disable }; 81 } 82 83 static cl::opt<DefaultOnOff> 84 DwarfAccelTables("dwarf-accel-tables", cl::Hidden, 85 cl::desc("Output prototype dwarf accelerator tables."), 86 cl::values(clEnumVal(Default, "Default for platform"), 87 clEnumVal(Enable, "Enabled"), 88 clEnumVal(Disable, "Disabled"), clEnumValEnd), 89 cl::init(Default)); 90 91 static cl::opt<DefaultOnOff> 92 SplitDwarf("split-dwarf", cl::Hidden, 93 cl::desc("Output DWARF5 split debug info."), 94 cl::values(clEnumVal(Default, "Default for platform"), 95 clEnumVal(Enable, "Enabled"), 96 clEnumVal(Disable, "Disabled"), clEnumValEnd), 97 cl::init(Default)); 98 99 static cl::opt<DefaultOnOff> 100 DwarfPubSections("generate-dwarf-pub-sections", cl::Hidden, 101 cl::desc("Generate DWARF pubnames and pubtypes sections"), 102 cl::values(clEnumVal(Default, "Default for platform"), 103 clEnumVal(Enable, "Enabled"), 104 clEnumVal(Disable, "Disabled"), clEnumValEnd), 105 cl::init(Default)); 106 107 static const char *const DWARFGroupName = "DWARF Emission"; 108 static const char *const DbgTimerName = "DWARF Debug Writer"; 109 110 void DebugLocDwarfExpression::EmitOp(uint8_t Op, const char *Comment) { 111 BS.EmitInt8( 112 Op, Comment ? Twine(Comment) + " " + dwarf::OperationEncodingString(Op) 113 : dwarf::OperationEncodingString(Op)); 114 } 115 116 void DebugLocDwarfExpression::EmitSigned(int64_t Value) { 117 BS.EmitSLEB128(Value, Twine(Value)); 118 } 119 120 void DebugLocDwarfExpression::EmitUnsigned(uint64_t Value) { 121 BS.EmitULEB128(Value, Twine(Value)); 122 } 123 124 bool DebugLocDwarfExpression::isFrameRegister(unsigned MachineReg) { 125 // This information is not available while emitting .debug_loc entries. 126 return false; 127 } 128 129 //===----------------------------------------------------------------------===// 130 131 /// resolve - Look in the DwarfDebug map for the MDNode that 132 /// corresponds to the reference. 133 template <typename T> T *DbgVariable::resolve(TypedDINodeRef<T> Ref) const { 134 return DD->resolve(Ref); 135 } 136 137 bool DbgVariable::isBlockByrefVariable() const { 138 assert(Var && "Invalid complex DbgVariable!"); 139 return Var->getType() 140 .resolve(DD->getTypeIdentifierMap()) 141 ->isBlockByrefStruct(); 142 } 143 144 const DIType *DbgVariable::getType() const { 145 DIType *Ty = Var->getType().resolve(DD->getTypeIdentifierMap()); 146 // FIXME: isBlockByrefVariable should be reformulated in terms of complex 147 // addresses instead. 148 if (Ty->isBlockByrefStruct()) { 149 /* Byref variables, in Blocks, are declared by the programmer as 150 "SomeType VarName;", but the compiler creates a 151 __Block_byref_x_VarName struct, and gives the variable VarName 152 either the struct, or a pointer to the struct, as its type. This 153 is necessary for various behind-the-scenes things the compiler 154 needs to do with by-reference variables in blocks. 155 156 However, as far as the original *programmer* is concerned, the 157 variable should still have type 'SomeType', as originally declared. 158 159 The following function dives into the __Block_byref_x_VarName 160 struct to find the original type of the variable. This will be 161 passed back to the code generating the type for the Debug 162 Information Entry for the variable 'VarName'. 'VarName' will then 163 have the original type 'SomeType' in its debug information. 164 165 The original type 'SomeType' will be the type of the field named 166 'VarName' inside the __Block_byref_x_VarName struct. 167 168 NOTE: In order for this to not completely fail on the debugger 169 side, the Debug Information Entry for the variable VarName needs to 170 have a DW_AT_location that tells the debugger how to unwind through 171 the pointers and __Block_byref_x_VarName struct to find the actual 172 value of the variable. The function addBlockByrefType does this. */ 173 DIType *subType = Ty; 174 uint16_t tag = Ty->getTag(); 175 176 if (tag == dwarf::DW_TAG_pointer_type) 177 subType = resolve(cast<DIDerivedType>(Ty)->getBaseType()); 178 179 auto Elements = cast<DICompositeTypeBase>(subType)->getElements(); 180 for (unsigned i = 0, N = Elements.size(); i < N; ++i) { 181 auto *DT = cast<DIDerivedTypeBase>(Elements[i]); 182 if (getName() == DT->getName()) 183 return resolve(DT->getBaseType()); 184 } 185 } 186 return Ty; 187 } 188 189 static LLVM_CONSTEXPR DwarfAccelTable::Atom TypeAtoms[] = { 190 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, dwarf::DW_FORM_data4), 191 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_tag, dwarf::DW_FORM_data2), 192 DwarfAccelTable::Atom(dwarf::DW_ATOM_type_flags, dwarf::DW_FORM_data1)}; 193 194 DwarfDebug::DwarfDebug(AsmPrinter *A, Module *M) 195 : Asm(A), MMI(Asm->MMI), DebugLocs(A->OutStreamer->isVerboseAsm()), 196 PrevLabel(nullptr), InfoHolder(A, "info_string", DIEValueAllocator), 197 UsedNonDefaultText(false), 198 SkeletonHolder(A, "skel_string", DIEValueAllocator), 199 IsDarwin(Triple(A->getTargetTriple()).isOSDarwin()), 200 IsPS4(Triple(A->getTargetTriple()).isPS4()), 201 AccelNames(DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, 202 dwarf::DW_FORM_data4)), 203 AccelObjC(DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, 204 dwarf::DW_FORM_data4)), 205 AccelNamespace(DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, 206 dwarf::DW_FORM_data4)), 207 AccelTypes(TypeAtoms) { 208 209 CurFn = nullptr; 210 CurMI = nullptr; 211 212 // Turn on accelerator tables for Darwin by default, pubnames by 213 // default for non-Darwin/PS4, and handle split dwarf. 214 if (DwarfAccelTables == Default) 215 HasDwarfAccelTables = IsDarwin; 216 else 217 HasDwarfAccelTables = DwarfAccelTables == Enable; 218 219 if (SplitDwarf == Default) 220 HasSplitDwarf = false; 221 else 222 HasSplitDwarf = SplitDwarf == Enable; 223 224 if (DwarfPubSections == Default) 225 HasDwarfPubSections = !IsDarwin && !IsPS4; 226 else 227 HasDwarfPubSections = DwarfPubSections == Enable; 228 229 unsigned DwarfVersionNumber = Asm->TM.Options.MCOptions.DwarfVersion; 230 DwarfVersion = DwarfVersionNumber ? DwarfVersionNumber 231 : MMI->getModule()->getDwarfVersion(); 232 233 // Darwin and PS4 use the standard TLS opcode (defined in DWARF 3). 234 // Everybody else uses GNU's. 235 UseGNUTLSOpcode = !(IsDarwin || IsPS4) || DwarfVersion < 3; 236 237 Asm->OutStreamer->getContext().setDwarfVersion(DwarfVersion); 238 239 { 240 NamedRegionTimer T(DbgTimerName, DWARFGroupName, TimePassesIsEnabled); 241 beginModule(); 242 } 243 } 244 245 // Define out of line so we don't have to include DwarfUnit.h in DwarfDebug.h. 246 DwarfDebug::~DwarfDebug() { } 247 248 static bool isObjCClass(StringRef Name) { 249 return Name.startswith("+") || Name.startswith("-"); 250 } 251 252 static bool hasObjCCategory(StringRef Name) { 253 if (!isObjCClass(Name)) 254 return false; 255 256 return Name.find(") ") != StringRef::npos; 257 } 258 259 static void getObjCClassCategory(StringRef In, StringRef &Class, 260 StringRef &Category) { 261 if (!hasObjCCategory(In)) { 262 Class = In.slice(In.find('[') + 1, In.find(' ')); 263 Category = ""; 264 return; 265 } 266 267 Class = In.slice(In.find('[') + 1, In.find('(')); 268 Category = In.slice(In.find('[') + 1, In.find(' ')); 269 return; 270 } 271 272 static StringRef getObjCMethodName(StringRef In) { 273 return In.slice(In.find(' ') + 1, In.find(']')); 274 } 275 276 // Add the various names to the Dwarf accelerator table names. 277 // TODO: Determine whether or not we should add names for programs 278 // that do not have a DW_AT_name or DW_AT_linkage_name field - this 279 // is only slightly different than the lookup of non-standard ObjC names. 280 void DwarfDebug::addSubprogramNames(const DISubprogram *SP, DIE &Die) { 281 if (!SP->isDefinition()) 282 return; 283 addAccelName(SP->getName(), Die); 284 285 // If the linkage name is different than the name, go ahead and output 286 // that as well into the name table. 287 if (SP->getLinkageName() != "" && SP->getName() != SP->getLinkageName()) 288 addAccelName(SP->getLinkageName(), Die); 289 290 // If this is an Objective-C selector name add it to the ObjC accelerator 291 // too. 292 if (isObjCClass(SP->getName())) { 293 StringRef Class, Category; 294 getObjCClassCategory(SP->getName(), Class, Category); 295 addAccelObjC(Class, Die); 296 if (Category != "") 297 addAccelObjC(Category, Die); 298 // Also add the base method name to the name table. 299 addAccelName(getObjCMethodName(SP->getName()), Die); 300 } 301 } 302 303 /// isSubprogramContext - Return true if Context is either a subprogram 304 /// or another context nested inside a subprogram. 305 bool DwarfDebug::isSubprogramContext(const MDNode *Context) { 306 if (!Context) 307 return false; 308 if (isa<DISubprogram>(Context)) 309 return true; 310 if (auto *T = dyn_cast<DIType>(Context)) 311 return isSubprogramContext(resolve(T->getScope())); 312 return false; 313 } 314 315 /// Check whether we should create a DIE for the given Scope, return true 316 /// if we don't create a DIE (the corresponding DIE is null). 317 bool DwarfDebug::isLexicalScopeDIENull(LexicalScope *Scope) { 318 if (Scope->isAbstractScope()) 319 return false; 320 321 // We don't create a DIE if there is no Range. 322 const SmallVectorImpl<InsnRange> &Ranges = Scope->getRanges(); 323 if (Ranges.empty()) 324 return true; 325 326 if (Ranges.size() > 1) 327 return false; 328 329 // We don't create a DIE if we have a single Range and the end label 330 // is null. 331 return !getLabelAfterInsn(Ranges.front().second); 332 } 333 334 template <typename Func> void forBothCUs(DwarfCompileUnit &CU, Func F) { 335 F(CU); 336 if (auto *SkelCU = CU.getSkeleton()) 337 F(*SkelCU); 338 } 339 340 void DwarfDebug::constructAbstractSubprogramScopeDIE(LexicalScope *Scope) { 341 assert(Scope && Scope->getScopeNode()); 342 assert(Scope->isAbstractScope()); 343 assert(!Scope->getInlinedAt()); 344 345 const MDNode *SP = Scope->getScopeNode(); 346 347 ProcessedSPNodes.insert(SP); 348 349 // Find the subprogram's DwarfCompileUnit in the SPMap in case the subprogram 350 // was inlined from another compile unit. 351 auto &CU = SPMap[SP]; 352 forBothCUs(*CU, [&](DwarfCompileUnit &CU) { 353 CU.constructAbstractSubprogramScopeDIE(Scope); 354 }); 355 } 356 357 void DwarfDebug::addGnuPubAttributes(DwarfUnit &U, DIE &D) const { 358 if (!GenerateGnuPubSections) 359 return; 360 361 U.addFlag(D, dwarf::DW_AT_GNU_pubnames); 362 } 363 364 // Create new DwarfCompileUnit for the given metadata node with tag 365 // DW_TAG_compile_unit. 366 DwarfCompileUnit & 367 DwarfDebug::constructDwarfCompileUnit(const DICompileUnit *DIUnit) { 368 StringRef FN = DIUnit->getFilename(); 369 CompilationDir = DIUnit->getDirectory(); 370 371 auto OwnedUnit = make_unique<DwarfCompileUnit>( 372 InfoHolder.getUnits().size(), DIUnit, Asm, this, &InfoHolder); 373 DwarfCompileUnit &NewCU = *OwnedUnit; 374 DIE &Die = NewCU.getUnitDie(); 375 InfoHolder.addUnit(std::move(OwnedUnit)); 376 if (useSplitDwarf()) 377 NewCU.setSkeleton(constructSkeletonCU(NewCU)); 378 379 // LTO with assembly output shares a single line table amongst multiple CUs. 380 // To avoid the compilation directory being ambiguous, let the line table 381 // explicitly describe the directory of all files, never relying on the 382 // compilation directory. 383 if (!Asm->OutStreamer->hasRawTextSupport() || SingleCU) 384 Asm->OutStreamer->getContext().setMCLineTableCompilationDir( 385 NewCU.getUniqueID(), CompilationDir); 386 387 NewCU.addString(Die, dwarf::DW_AT_producer, DIUnit->getProducer()); 388 NewCU.addUInt(Die, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 389 DIUnit->getSourceLanguage()); 390 NewCU.addString(Die, dwarf::DW_AT_name, FN); 391 392 if (!useSplitDwarf()) { 393 NewCU.initStmtList(); 394 395 // If we're using split dwarf the compilation dir is going to be in the 396 // skeleton CU and so we don't need to duplicate it here. 397 if (!CompilationDir.empty()) 398 NewCU.addString(Die, dwarf::DW_AT_comp_dir, CompilationDir); 399 400 addGnuPubAttributes(NewCU, Die); 401 } 402 403 if (DIUnit->isOptimized()) 404 NewCU.addFlag(Die, dwarf::DW_AT_APPLE_optimized); 405 406 StringRef Flags = DIUnit->getFlags(); 407 if (!Flags.empty()) 408 NewCU.addString(Die, dwarf::DW_AT_APPLE_flags, Flags); 409 410 if (unsigned RVer = DIUnit->getRuntimeVersion()) 411 NewCU.addUInt(Die, dwarf::DW_AT_APPLE_major_runtime_vers, 412 dwarf::DW_FORM_data1, RVer); 413 414 if (useSplitDwarf()) 415 NewCU.initSection(Asm->getObjFileLowering().getDwarfInfoDWOSection()); 416 else 417 NewCU.initSection(Asm->getObjFileLowering().getDwarfInfoSection()); 418 419 CUMap.insert(std::make_pair(DIUnit, &NewCU)); 420 CUDieMap.insert(std::make_pair(&Die, &NewCU)); 421 return NewCU; 422 } 423 424 void DwarfDebug::constructAndAddImportedEntityDIE(DwarfCompileUnit &TheCU, 425 const DIImportedEntity *N) { 426 if (DIE *D = TheCU.getOrCreateContextDIE(N->getScope())) 427 D->addChild(TheCU.constructImportedEntityDIE(N)); 428 } 429 430 // Emit all Dwarf sections that should come prior to the content. Create 431 // global DIEs and emit initial debug info sections. This is invoked by 432 // the target AsmPrinter. 433 void DwarfDebug::beginModule() { 434 if (DisableDebugInfoPrinting) 435 return; 436 437 const Module *M = MMI->getModule(); 438 439 FunctionDIs = makeSubprogramMap(*M); 440 441 NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu"); 442 if (!CU_Nodes) 443 return; 444 TypeIdentifierMap = generateDITypeIdentifierMap(CU_Nodes); 445 446 SingleCU = CU_Nodes->getNumOperands() == 1; 447 448 for (MDNode *N : CU_Nodes->operands()) { 449 auto *CUNode = cast<DICompileUnit>(N); 450 DwarfCompileUnit &CU = constructDwarfCompileUnit(CUNode); 451 for (auto *IE : CUNode->getImportedEntities()) 452 ScopesWithImportedEntities.push_back(std::make_pair(IE->getScope(), IE)); 453 // Stable sort to preserve the order of appearance of imported entities. 454 // This is to avoid out-of-order processing of interdependent declarations 455 // within the same scope, e.g. { namespace A = base; namespace B = A; } 456 std::stable_sort(ScopesWithImportedEntities.begin(), 457 ScopesWithImportedEntities.end(), less_first()); 458 for (auto *GV : CUNode->getGlobalVariables()) 459 CU.getOrCreateGlobalVariableDIE(GV); 460 for (auto *SP : CUNode->getSubprograms()) 461 SPMap.insert(std::make_pair(SP, &CU)); 462 for (auto *Ty : CUNode->getEnumTypes()) { 463 // The enum types array by design contains pointers to 464 // MDNodes rather than DIRefs. Unique them here. 465 CU.getOrCreateTypeDIE(cast<DIType>(resolve(Ty->getRef()))); 466 } 467 for (auto *Ty : CUNode->getRetainedTypes()) { 468 // The retained types array by design contains pointers to 469 // MDNodes rather than DIRefs. Unique them here. 470 CU.getOrCreateTypeDIE(cast<DIType>(resolve(Ty->getRef()))); 471 } 472 // Emit imported_modules last so that the relevant context is already 473 // available. 474 for (auto *IE : CUNode->getImportedEntities()) 475 constructAndAddImportedEntityDIE(CU, IE); 476 } 477 478 // Tell MMI that we have debug info. 479 MMI->setDebugInfoAvailability(true); 480 } 481 482 void DwarfDebug::finishVariableDefinitions() { 483 for (const auto &Var : ConcreteVariables) { 484 DIE *VariableDie = Var->getDIE(); 485 assert(VariableDie); 486 // FIXME: Consider the time-space tradeoff of just storing the unit pointer 487 // in the ConcreteVariables list, rather than looking it up again here. 488 // DIE::getUnit isn't simple - it walks parent pointers, etc. 489 DwarfCompileUnit *Unit = lookupUnit(VariableDie->getUnit()); 490 assert(Unit); 491 DbgVariable *AbsVar = getExistingAbstractVariable( 492 InlinedVariable(Var->getVariable(), Var->getInlinedAt())); 493 if (AbsVar && AbsVar->getDIE()) { 494 Unit->addDIEEntry(*VariableDie, dwarf::DW_AT_abstract_origin, 495 *AbsVar->getDIE()); 496 } else 497 Unit->applyVariableAttributes(*Var, *VariableDie); 498 } 499 } 500 501 void DwarfDebug::finishSubprogramDefinitions() { 502 for (const auto &P : SPMap) 503 forBothCUs(*P.second, [&](DwarfCompileUnit &CU) { 504 CU.finishSubprogramDefinition(cast<DISubprogram>(P.first)); 505 }); 506 } 507 508 509 // Collect info for variables that were optimized out. 510 void DwarfDebug::collectDeadVariables() { 511 const Module *M = MMI->getModule(); 512 513 if (NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu")) { 514 for (MDNode *N : CU_Nodes->operands()) { 515 auto *TheCU = cast<DICompileUnit>(N); 516 // Construct subprogram DIE and add variables DIEs. 517 DwarfCompileUnit *SPCU = 518 static_cast<DwarfCompileUnit *>(CUMap.lookup(TheCU)); 519 assert(SPCU && "Unable to find Compile Unit!"); 520 for (auto *SP : TheCU->getSubprograms()) { 521 if (ProcessedSPNodes.count(SP) != 0) 522 continue; 523 SPCU->collectDeadVariables(SP); 524 } 525 } 526 } 527 } 528 529 void DwarfDebug::finalizeModuleInfo() { 530 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 531 532 finishSubprogramDefinitions(); 533 534 finishVariableDefinitions(); 535 536 // Collect info for variables that were optimized out. 537 collectDeadVariables(); 538 539 // Handle anything that needs to be done on a per-unit basis after 540 // all other generation. 541 for (const auto &P : CUMap) { 542 auto &TheCU = *P.second; 543 // Emit DW_AT_containing_type attribute to connect types with their 544 // vtable holding type. 545 TheCU.constructContainingTypeDIEs(); 546 547 // Add CU specific attributes if we need to add any. 548 // If we're splitting the dwarf out now that we've got the entire 549 // CU then add the dwo id to it. 550 auto *SkCU = TheCU.getSkeleton(); 551 if (useSplitDwarf()) { 552 // Emit a unique identifier for this CU. 553 uint64_t ID = DIEHash(Asm).computeCUSignature(TheCU.getUnitDie()); 554 TheCU.addUInt(TheCU.getUnitDie(), dwarf::DW_AT_GNU_dwo_id, 555 dwarf::DW_FORM_data8, ID); 556 SkCU->addUInt(SkCU->getUnitDie(), dwarf::DW_AT_GNU_dwo_id, 557 dwarf::DW_FORM_data8, ID); 558 559 // We don't keep track of which addresses are used in which CU so this 560 // is a bit pessimistic under LTO. 561 if (!AddrPool.isEmpty()) { 562 const MCSymbol *Sym = TLOF.getDwarfAddrSection()->getBeginSymbol(); 563 SkCU->addSectionLabel(SkCU->getUnitDie(), dwarf::DW_AT_GNU_addr_base, 564 Sym, Sym); 565 } 566 if (!SkCU->getRangeLists().empty()) { 567 const MCSymbol *Sym = TLOF.getDwarfRangesSection()->getBeginSymbol(); 568 SkCU->addSectionLabel(SkCU->getUnitDie(), dwarf::DW_AT_GNU_ranges_base, 569 Sym, Sym); 570 } 571 } 572 573 // If we have code split among multiple sections or non-contiguous 574 // ranges of code then emit a DW_AT_ranges attribute on the unit that will 575 // remain in the .o file, otherwise add a DW_AT_low_pc. 576 // FIXME: We should use ranges allow reordering of code ala 577 // .subsections_via_symbols in mach-o. This would mean turning on 578 // ranges for all subprogram DIEs for mach-o. 579 DwarfCompileUnit &U = SkCU ? *SkCU : TheCU; 580 if (unsigned NumRanges = TheCU.getRanges().size()) { 581 if (NumRanges > 1) 582 // A DW_AT_low_pc attribute may also be specified in combination with 583 // DW_AT_ranges to specify the default base address for use in 584 // location lists (see Section 2.6.2) and range lists (see Section 585 // 2.17.3). 586 U.addUInt(U.getUnitDie(), dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 0); 587 else 588 U.setBaseAddress(TheCU.getRanges().front().getStart()); 589 U.attachRangesOrLowHighPC(U.getUnitDie(), TheCU.takeRanges()); 590 } 591 } 592 593 // Compute DIE offsets and sizes. 594 InfoHolder.computeSizeAndOffsets(); 595 if (useSplitDwarf()) 596 SkeletonHolder.computeSizeAndOffsets(); 597 } 598 599 // Emit all Dwarf sections that should come after the content. 600 void DwarfDebug::endModule() { 601 assert(CurFn == nullptr); 602 assert(CurMI == nullptr); 603 604 // If we aren't actually generating debug info (check beginModule - 605 // conditionalized on !DisableDebugInfoPrinting and the presence of the 606 // llvm.dbg.cu metadata node) 607 if (!MMI->hasDebugInfo()) 608 return; 609 610 // Finalize the debug info for the module. 611 finalizeModuleInfo(); 612 613 emitDebugStr(); 614 615 if (useSplitDwarf()) 616 emitDebugLocDWO(); 617 else 618 // Emit info into a debug loc section. 619 emitDebugLoc(); 620 621 // Corresponding abbreviations into a abbrev section. 622 emitAbbreviations(); 623 624 // Emit all the DIEs into a debug info section. 625 emitDebugInfo(); 626 627 // Emit info into a debug aranges section. 628 if (GenerateARangeSection) 629 emitDebugARanges(); 630 631 // Emit info into a debug ranges section. 632 emitDebugRanges(); 633 634 if (useSplitDwarf()) { 635 emitDebugStrDWO(); 636 emitDebugInfoDWO(); 637 emitDebugAbbrevDWO(); 638 emitDebugLineDWO(); 639 // Emit DWO addresses. 640 AddrPool.emit(*Asm, Asm->getObjFileLowering().getDwarfAddrSection()); 641 } 642 643 // Emit info into the dwarf accelerator table sections. 644 if (useDwarfAccelTables()) { 645 emitAccelNames(); 646 emitAccelObjC(); 647 emitAccelNamespaces(); 648 emitAccelTypes(); 649 } 650 651 // Emit the pubnames and pubtypes sections if requested. 652 if (HasDwarfPubSections) { 653 emitDebugPubNames(GenerateGnuPubSections); 654 emitDebugPubTypes(GenerateGnuPubSections); 655 } 656 657 // clean up. 658 SPMap.clear(); 659 AbstractVariables.clear(); 660 } 661 662 // Find abstract variable, if any, associated with Var. 663 DbgVariable * 664 DwarfDebug::getExistingAbstractVariable(InlinedVariable IV, 665 const DILocalVariable *&Cleansed) { 666 // More then one inlined variable corresponds to one abstract variable. 667 Cleansed = IV.first; 668 auto I = AbstractVariables.find(Cleansed); 669 if (I != AbstractVariables.end()) 670 return I->second.get(); 671 return nullptr; 672 } 673 674 DbgVariable *DwarfDebug::getExistingAbstractVariable(InlinedVariable IV) { 675 const DILocalVariable *Cleansed; 676 return getExistingAbstractVariable(IV, Cleansed); 677 } 678 679 void DwarfDebug::createAbstractVariable(const DILocalVariable *Var, 680 LexicalScope *Scope) { 681 auto AbsDbgVariable = 682 make_unique<DbgVariable>(Var, /* IA */ nullptr, /* Expr */ nullptr, this); 683 InfoHolder.addScopeVariable(Scope, AbsDbgVariable.get()); 684 AbstractVariables[Var] = std::move(AbsDbgVariable); 685 } 686 687 void DwarfDebug::ensureAbstractVariableIsCreated(InlinedVariable IV, 688 const MDNode *ScopeNode) { 689 const DILocalVariable *Cleansed = nullptr; 690 if (getExistingAbstractVariable(IV, Cleansed)) 691 return; 692 693 createAbstractVariable(Cleansed, LScopes.getOrCreateAbstractScope( 694 cast<DILocalScope>(ScopeNode))); 695 } 696 697 void DwarfDebug::ensureAbstractVariableIsCreatedIfScoped( 698 InlinedVariable IV, const MDNode *ScopeNode) { 699 const DILocalVariable *Cleansed = nullptr; 700 if (getExistingAbstractVariable(IV, Cleansed)) 701 return; 702 703 if (LexicalScope *Scope = 704 LScopes.findAbstractScope(cast_or_null<DILocalScope>(ScopeNode))) 705 createAbstractVariable(Cleansed, Scope); 706 } 707 708 // Collect variable information from side table maintained by MMI. 709 void DwarfDebug::collectVariableInfoFromMMITable( 710 DenseSet<InlinedVariable> &Processed) { 711 for (const auto &VI : MMI->getVariableDbgInfo()) { 712 if (!VI.Var) 713 continue; 714 assert(VI.Var->isValidLocationForIntrinsic(VI.Loc) && 715 "Expected inlined-at fields to agree"); 716 717 InlinedVariable Var(VI.Var, VI.Loc->getInlinedAt()); 718 Processed.insert(Var); 719 LexicalScope *Scope = LScopes.findLexicalScope(VI.Loc); 720 721 // If variable scope is not found then skip this variable. 722 if (!Scope) 723 continue; 724 725 const DIExpression *Expr = cast_or_null<DIExpression>(VI.Expr); 726 ensureAbstractVariableIsCreatedIfScoped(Var, Scope->getScopeNode()); 727 auto RegVar = 728 make_unique<DbgVariable>(Var.first, Var.second, Expr, this, VI.Slot); 729 if (InfoHolder.addScopeVariable(Scope, RegVar.get())) 730 ConcreteVariables.push_back(std::move(RegVar)); 731 } 732 } 733 734 // Get .debug_loc entry for the instruction range starting at MI. 735 static DebugLocEntry::Value getDebugLocValue(const MachineInstr *MI) { 736 const DIExpression *Expr = MI->getDebugExpression(); 737 738 assert(MI->getNumOperands() == 4); 739 if (MI->getOperand(0).isReg()) { 740 MachineLocation MLoc; 741 // If the second operand is an immediate, this is a 742 // register-indirect address. 743 if (!MI->getOperand(1).isImm()) 744 MLoc.set(MI->getOperand(0).getReg()); 745 else 746 MLoc.set(MI->getOperand(0).getReg(), MI->getOperand(1).getImm()); 747 return DebugLocEntry::Value(Expr, MLoc); 748 } 749 if (MI->getOperand(0).isImm()) 750 return DebugLocEntry::Value(Expr, MI->getOperand(0).getImm()); 751 if (MI->getOperand(0).isFPImm()) 752 return DebugLocEntry::Value(Expr, MI->getOperand(0).getFPImm()); 753 if (MI->getOperand(0).isCImm()) 754 return DebugLocEntry::Value(Expr, MI->getOperand(0).getCImm()); 755 756 llvm_unreachable("Unexpected 4-operand DBG_VALUE instruction!"); 757 } 758 759 /// Determine whether two variable pieces overlap. 760 static bool piecesOverlap(const DIExpression *P1, const DIExpression *P2) { 761 if (!P1->isBitPiece() || !P2->isBitPiece()) 762 return true; 763 unsigned l1 = P1->getBitPieceOffset(); 764 unsigned l2 = P2->getBitPieceOffset(); 765 unsigned r1 = l1 + P1->getBitPieceSize(); 766 unsigned r2 = l2 + P2->getBitPieceSize(); 767 // True where [l1,r1[ and [r1,r2[ overlap. 768 return (l1 < r2) && (l2 < r1); 769 } 770 771 /// Build the location list for all DBG_VALUEs in the function that 772 /// describe the same variable. If the ranges of several independent 773 /// pieces of the same variable overlap partially, split them up and 774 /// combine the ranges. The resulting DebugLocEntries are will have 775 /// strict monotonically increasing begin addresses and will never 776 /// overlap. 777 // 778 // Input: 779 // 780 // Ranges History [var, loc, piece ofs size] 781 // 0 | [x, (reg0, piece 0, 32)] 782 // 1 | | [x, (reg1, piece 32, 32)] <- IsPieceOfPrevEntry 783 // 2 | | ... 784 // 3 | [clobber reg0] 785 // 4 [x, (mem, piece 0, 64)] <- overlapping with both previous pieces of 786 // x. 787 // 788 // Output: 789 // 790 // [0-1] [x, (reg0, piece 0, 32)] 791 // [1-3] [x, (reg0, piece 0, 32), (reg1, piece 32, 32)] 792 // [3-4] [x, (reg1, piece 32, 32)] 793 // [4- ] [x, (mem, piece 0, 64)] 794 void 795 DwarfDebug::buildLocationList(SmallVectorImpl<DebugLocEntry> &DebugLoc, 796 const DbgValueHistoryMap::InstrRanges &Ranges) { 797 SmallVector<DebugLocEntry::Value, 4> OpenRanges; 798 799 for (auto I = Ranges.begin(), E = Ranges.end(); I != E; ++I) { 800 const MachineInstr *Begin = I->first; 801 const MachineInstr *End = I->second; 802 assert(Begin->isDebugValue() && "Invalid History entry"); 803 804 // Check if a variable is inaccessible in this range. 805 if (Begin->getNumOperands() > 1 && 806 Begin->getOperand(0).isReg() && !Begin->getOperand(0).getReg()) { 807 OpenRanges.clear(); 808 continue; 809 } 810 811 // If this piece overlaps with any open ranges, truncate them. 812 const DIExpression *DIExpr = Begin->getDebugExpression(); 813 auto Last = std::remove_if(OpenRanges.begin(), OpenRanges.end(), 814 [&](DebugLocEntry::Value R) { 815 return piecesOverlap(DIExpr, R.getExpression()); 816 }); 817 OpenRanges.erase(Last, OpenRanges.end()); 818 819 const MCSymbol *StartLabel = getLabelBeforeInsn(Begin); 820 assert(StartLabel && "Forgot label before DBG_VALUE starting a range!"); 821 822 const MCSymbol *EndLabel; 823 if (End != nullptr) 824 EndLabel = getLabelAfterInsn(End); 825 else if (std::next(I) == Ranges.end()) 826 EndLabel = Asm->getFunctionEnd(); 827 else 828 EndLabel = getLabelBeforeInsn(std::next(I)->first); 829 assert(EndLabel && "Forgot label after instruction ending a range!"); 830 831 DEBUG(dbgs() << "DotDebugLoc: " << *Begin << "\n"); 832 833 auto Value = getDebugLocValue(Begin); 834 DebugLocEntry Loc(StartLabel, EndLabel, Value); 835 bool couldMerge = false; 836 837 // If this is a piece, it may belong to the current DebugLocEntry. 838 if (DIExpr->isBitPiece()) { 839 // Add this value to the list of open ranges. 840 OpenRanges.push_back(Value); 841 842 // Attempt to add the piece to the last entry. 843 if (!DebugLoc.empty()) 844 if (DebugLoc.back().MergeValues(Loc)) 845 couldMerge = true; 846 } 847 848 if (!couldMerge) { 849 // Need to add a new DebugLocEntry. Add all values from still 850 // valid non-overlapping pieces. 851 if (OpenRanges.size()) 852 Loc.addValues(OpenRanges); 853 854 DebugLoc.push_back(std::move(Loc)); 855 } 856 857 // Attempt to coalesce the ranges of two otherwise identical 858 // DebugLocEntries. 859 auto CurEntry = DebugLoc.rbegin(); 860 DEBUG({ 861 dbgs() << CurEntry->getValues().size() << " Values:\n"; 862 for (auto &Value : CurEntry->getValues()) 863 Value.getExpression()->dump(); 864 dbgs() << "-----\n"; 865 }); 866 867 auto PrevEntry = std::next(CurEntry); 868 if (PrevEntry != DebugLoc.rend() && PrevEntry->MergeRanges(*CurEntry)) 869 DebugLoc.pop_back(); 870 } 871 } 872 873 874 // Find variables for each lexical scope. 875 void DwarfDebug::collectVariableInfo(DwarfCompileUnit &TheCU, 876 const DISubprogram *SP, 877 DenseSet<InlinedVariable> &Processed) { 878 // Grab the variable info that was squirreled away in the MMI side-table. 879 collectVariableInfoFromMMITable(Processed); 880 881 for (const auto &I : DbgValues) { 882 InlinedVariable IV = I.first; 883 if (Processed.count(IV)) 884 continue; 885 886 // Instruction ranges, specifying where IV is accessible. 887 const auto &Ranges = I.second; 888 if (Ranges.empty()) 889 continue; 890 891 LexicalScope *Scope = nullptr; 892 if (const DILocation *IA = IV.second) 893 Scope = LScopes.findInlinedScope(IV.first->getScope(), IA); 894 else 895 Scope = LScopes.findLexicalScope(IV.first->getScope()); 896 // If variable scope is not found then skip this variable. 897 if (!Scope) 898 continue; 899 900 Processed.insert(IV); 901 const MachineInstr *MInsn = Ranges.front().first; 902 assert(MInsn->isDebugValue() && "History must begin with debug value"); 903 ensureAbstractVariableIsCreatedIfScoped(IV, Scope->getScopeNode()); 904 ConcreteVariables.push_back(make_unique<DbgVariable>(MInsn, this)); 905 DbgVariable *RegVar = ConcreteVariables.back().get(); 906 InfoHolder.addScopeVariable(Scope, RegVar); 907 908 // Check if the first DBG_VALUE is valid for the rest of the function. 909 if (Ranges.size() == 1 && Ranges.front().second == nullptr) 910 continue; 911 912 // Handle multiple DBG_VALUE instructions describing one variable. 913 RegVar->setDebugLocListIndex( 914 DebugLocs.startList(&TheCU, Asm->createTempSymbol("debug_loc"))); 915 916 // Build the location list for this variable. 917 SmallVector<DebugLocEntry, 8> Entries; 918 buildLocationList(Entries, Ranges); 919 920 // If the variable has an DIBasicType, extract it. Basic types cannot have 921 // unique identifiers, so don't bother resolving the type with the 922 // identifier map. 923 const DIBasicType *BT = dyn_cast<DIBasicType>( 924 static_cast<const Metadata *>(IV.first->getType())); 925 926 // Finalize the entry by lowering it into a DWARF bytestream. 927 for (auto &Entry : Entries) 928 Entry.finalize(*Asm, DebugLocs, BT); 929 } 930 931 // Collect info for variables that were optimized out. 932 for (const DILocalVariable *DV : SP->getVariables()) { 933 if (!Processed.insert(InlinedVariable(DV, nullptr)).second) 934 continue; 935 if (LexicalScope *Scope = LScopes.findLexicalScope(DV->getScope())) { 936 ensureAbstractVariableIsCreatedIfScoped(InlinedVariable(DV, nullptr), 937 Scope->getScopeNode()); 938 ConcreteVariables.push_back(make_unique<DbgVariable>( 939 DV, /* IA */ nullptr, /* Expr */ nullptr, this)); 940 InfoHolder.addScopeVariable(Scope, ConcreteVariables.back().get()); 941 } 942 } 943 } 944 945 // Return Label preceding the instruction. 946 MCSymbol *DwarfDebug::getLabelBeforeInsn(const MachineInstr *MI) { 947 MCSymbol *Label = LabelsBeforeInsn.lookup(MI); 948 assert(Label && "Didn't insert label before instruction"); 949 return Label; 950 } 951 952 // Return Label immediately following the instruction. 953 MCSymbol *DwarfDebug::getLabelAfterInsn(const MachineInstr *MI) { 954 return LabelsAfterInsn.lookup(MI); 955 } 956 957 // Process beginning of an instruction. 958 void DwarfDebug::beginInstruction(const MachineInstr *MI) { 959 assert(CurMI == nullptr); 960 CurMI = MI; 961 // Check if source location changes, but ignore DBG_VALUE locations. 962 if (!MI->isDebugValue()) { 963 DebugLoc DL = MI->getDebugLoc(); 964 if (DL != PrevInstLoc) { 965 if (DL) { 966 unsigned Flags = 0; 967 PrevInstLoc = DL; 968 if (DL == PrologEndLoc) { 969 Flags |= DWARF2_FLAG_PROLOGUE_END; 970 PrologEndLoc = DebugLoc(); 971 Flags |= DWARF2_FLAG_IS_STMT; 972 } 973 if (DL.getLine() != 974 Asm->OutStreamer->getContext().getCurrentDwarfLoc().getLine()) 975 Flags |= DWARF2_FLAG_IS_STMT; 976 977 const MDNode *Scope = DL.getScope(); 978 recordSourceLine(DL.getLine(), DL.getCol(), Scope, Flags); 979 } else if (UnknownLocations) { 980 PrevInstLoc = DL; 981 recordSourceLine(0, 0, nullptr, 0); 982 } 983 } 984 } 985 986 // Insert labels where requested. 987 DenseMap<const MachineInstr *, MCSymbol *>::iterator I = 988 LabelsBeforeInsn.find(MI); 989 990 // No label needed. 991 if (I == LabelsBeforeInsn.end()) 992 return; 993 994 // Label already assigned. 995 if (I->second) 996 return; 997 998 if (!PrevLabel) { 999 PrevLabel = MMI->getContext().createTempSymbol(); 1000 Asm->OutStreamer->EmitLabel(PrevLabel); 1001 } 1002 I->second = PrevLabel; 1003 } 1004 1005 // Process end of an instruction. 1006 void DwarfDebug::endInstruction() { 1007 assert(CurMI != nullptr); 1008 // Don't create a new label after DBG_VALUE instructions. 1009 // They don't generate code. 1010 if (!CurMI->isDebugValue()) 1011 PrevLabel = nullptr; 1012 1013 DenseMap<const MachineInstr *, MCSymbol *>::iterator I = 1014 LabelsAfterInsn.find(CurMI); 1015 CurMI = nullptr; 1016 1017 // No label needed. 1018 if (I == LabelsAfterInsn.end()) 1019 return; 1020 1021 // Label already assigned. 1022 if (I->second) 1023 return; 1024 1025 // We need a label after this instruction. 1026 if (!PrevLabel) { 1027 PrevLabel = MMI->getContext().createTempSymbol(); 1028 Asm->OutStreamer->EmitLabel(PrevLabel); 1029 } 1030 I->second = PrevLabel; 1031 } 1032 1033 // Each LexicalScope has first instruction and last instruction to mark 1034 // beginning and end of a scope respectively. Create an inverse map that list 1035 // scopes starts (and ends) with an instruction. One instruction may start (or 1036 // end) multiple scopes. Ignore scopes that are not reachable. 1037 void DwarfDebug::identifyScopeMarkers() { 1038 SmallVector<LexicalScope *, 4> WorkList; 1039 WorkList.push_back(LScopes.getCurrentFunctionScope()); 1040 while (!WorkList.empty()) { 1041 LexicalScope *S = WorkList.pop_back_val(); 1042 1043 const SmallVectorImpl<LexicalScope *> &Children = S->getChildren(); 1044 if (!Children.empty()) 1045 WorkList.append(Children.begin(), Children.end()); 1046 1047 if (S->isAbstractScope()) 1048 continue; 1049 1050 for (const InsnRange &R : S->getRanges()) { 1051 assert(R.first && "InsnRange does not have first instruction!"); 1052 assert(R.second && "InsnRange does not have second instruction!"); 1053 requestLabelBeforeInsn(R.first); 1054 requestLabelAfterInsn(R.second); 1055 } 1056 } 1057 } 1058 1059 static DebugLoc findPrologueEndLoc(const MachineFunction *MF) { 1060 // First known non-DBG_VALUE and non-frame setup location marks 1061 // the beginning of the function body. 1062 for (const auto &MBB : *MF) 1063 for (const auto &MI : MBB) 1064 if (!MI.isDebugValue() && !MI.getFlag(MachineInstr::FrameSetup) && 1065 MI.getDebugLoc()) { 1066 // Did the target forget to set the FrameSetup flag for CFI insns? 1067 assert(!MI.isCFIInstruction() && 1068 "First non-frame-setup instruction is a CFI instruction."); 1069 return MI.getDebugLoc(); 1070 } 1071 return DebugLoc(); 1072 } 1073 1074 // Gather pre-function debug information. Assumes being called immediately 1075 // after the function entry point has been emitted. 1076 void DwarfDebug::beginFunction(const MachineFunction *MF) { 1077 CurFn = MF; 1078 1079 // If there's no debug info for the function we're not going to do anything. 1080 if (!MMI->hasDebugInfo()) 1081 return; 1082 1083 auto DI = FunctionDIs.find(MF->getFunction()); 1084 if (DI == FunctionDIs.end()) 1085 return; 1086 1087 // Grab the lexical scopes for the function, if we don't have any of those 1088 // then we're not going to be able to do anything. 1089 LScopes.initialize(*MF); 1090 if (LScopes.empty()) 1091 return; 1092 1093 assert(DbgValues.empty() && "DbgValues map wasn't cleaned!"); 1094 1095 // Make sure that each lexical scope will have a begin/end label. 1096 identifyScopeMarkers(); 1097 1098 // Set DwarfDwarfCompileUnitID in MCContext to the Compile Unit this function 1099 // belongs to so that we add to the correct per-cu line table in the 1100 // non-asm case. 1101 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1102 // FnScope->getScopeNode() and DI->second should represent the same function, 1103 // though they may not be the same MDNode due to inline functions merged in 1104 // LTO where the debug info metadata still differs (either due to distinct 1105 // written differences - two versions of a linkonce_odr function 1106 // written/copied into two separate files, or some sub-optimal metadata that 1107 // isn't structurally identical (see: file path/name info from clang, which 1108 // includes the directory of the cpp file being built, even when the file name 1109 // is absolute (such as an <> lookup header))) 1110 DwarfCompileUnit *TheCU = SPMap.lookup(FnScope->getScopeNode()); 1111 assert(TheCU && "Unable to find compile unit!"); 1112 if (Asm->OutStreamer->hasRawTextSupport()) 1113 // Use a single line table if we are generating assembly. 1114 Asm->OutStreamer->getContext().setDwarfCompileUnitID(0); 1115 else 1116 Asm->OutStreamer->getContext().setDwarfCompileUnitID(TheCU->getUniqueID()); 1117 1118 // Calculate history for local variables. 1119 calculateDbgValueHistory(MF, Asm->MF->getSubtarget().getRegisterInfo(), 1120 DbgValues); 1121 1122 // Request labels for the full history. 1123 for (const auto &I : DbgValues) { 1124 const auto &Ranges = I.second; 1125 if (Ranges.empty()) 1126 continue; 1127 1128 // The first mention of a function argument gets the CurrentFnBegin 1129 // label, so arguments are visible when breaking at function entry. 1130 const DILocalVariable *DIVar = Ranges.front().first->getDebugVariable(); 1131 if (DIVar->getTag() == dwarf::DW_TAG_arg_variable && 1132 getDISubprogram(DIVar->getScope())->describes(MF->getFunction())) { 1133 LabelsBeforeInsn[Ranges.front().first] = Asm->getFunctionBegin(); 1134 if (Ranges.front().first->getDebugExpression()->isBitPiece()) { 1135 // Mark all non-overlapping initial pieces. 1136 for (auto I = Ranges.begin(); I != Ranges.end(); ++I) { 1137 const DIExpression *Piece = I->first->getDebugExpression(); 1138 if (std::all_of(Ranges.begin(), I, 1139 [&](DbgValueHistoryMap::InstrRange Pred) { 1140 return !piecesOverlap(Piece, Pred.first->getDebugExpression()); 1141 })) 1142 LabelsBeforeInsn[I->first] = Asm->getFunctionBegin(); 1143 else 1144 break; 1145 } 1146 } 1147 } 1148 1149 for (const auto &Range : Ranges) { 1150 requestLabelBeforeInsn(Range.first); 1151 if (Range.second) 1152 requestLabelAfterInsn(Range.second); 1153 } 1154 } 1155 1156 PrevInstLoc = DebugLoc(); 1157 PrevLabel = Asm->getFunctionBegin(); 1158 1159 // Record beginning of function. 1160 PrologEndLoc = findPrologueEndLoc(MF); 1161 if (DILocation *L = PrologEndLoc) { 1162 // We'd like to list the prologue as "not statements" but GDB behaves 1163 // poorly if we do that. Revisit this with caution/GDB (7.5+) testing. 1164 auto *SP = L->getInlinedAtScope()->getSubprogram(); 1165 recordSourceLine(SP->getScopeLine(), 0, SP, DWARF2_FLAG_IS_STMT); 1166 } 1167 } 1168 1169 // Gather and emit post-function debug information. 1170 void DwarfDebug::endFunction(const MachineFunction *MF) { 1171 assert(CurFn == MF && 1172 "endFunction should be called with the same function as beginFunction"); 1173 1174 if (!MMI->hasDebugInfo() || LScopes.empty() || 1175 !FunctionDIs.count(MF->getFunction())) { 1176 // If we don't have a lexical scope for this function then there will 1177 // be a hole in the range information. Keep note of this by setting the 1178 // previously used section to nullptr. 1179 PrevCU = nullptr; 1180 CurFn = nullptr; 1181 return; 1182 } 1183 1184 // Set DwarfDwarfCompileUnitID in MCContext to default value. 1185 Asm->OutStreamer->getContext().setDwarfCompileUnitID(0); 1186 1187 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1188 auto *SP = cast<DISubprogram>(FnScope->getScopeNode()); 1189 DwarfCompileUnit &TheCU = *SPMap.lookup(SP); 1190 1191 DenseSet<InlinedVariable> ProcessedVars; 1192 collectVariableInfo(TheCU, SP, ProcessedVars); 1193 1194 // Add the range of this function to the list of ranges for the CU. 1195 TheCU.addRange(RangeSpan(Asm->getFunctionBegin(), Asm->getFunctionEnd())); 1196 1197 // Under -gmlt, skip building the subprogram if there are no inlined 1198 // subroutines inside it. 1199 if (TheCU.getCUNode()->getEmissionKind() == DIBuilder::LineTablesOnly && 1200 LScopes.getAbstractScopesList().empty() && !IsDarwin) { 1201 assert(InfoHolder.getScopeVariables().empty()); 1202 assert(DbgValues.empty()); 1203 // FIXME: This wouldn't be true in LTO with a -g (with inlining) CU followed 1204 // by a -gmlt CU. Add a test and remove this assertion. 1205 assert(AbstractVariables.empty()); 1206 LabelsBeforeInsn.clear(); 1207 LabelsAfterInsn.clear(); 1208 PrevLabel = nullptr; 1209 CurFn = nullptr; 1210 return; 1211 } 1212 1213 #ifndef NDEBUG 1214 size_t NumAbstractScopes = LScopes.getAbstractScopesList().size(); 1215 #endif 1216 // Construct abstract scopes. 1217 for (LexicalScope *AScope : LScopes.getAbstractScopesList()) { 1218 auto *SP = cast<DISubprogram>(AScope->getScopeNode()); 1219 // Collect info for variables that were optimized out. 1220 for (const DILocalVariable *DV : SP->getVariables()) { 1221 if (!ProcessedVars.insert(InlinedVariable(DV, nullptr)).second) 1222 continue; 1223 ensureAbstractVariableIsCreated(InlinedVariable(DV, nullptr), 1224 DV->getScope()); 1225 assert(LScopes.getAbstractScopesList().size() == NumAbstractScopes 1226 && "ensureAbstractVariableIsCreated inserted abstract scopes"); 1227 } 1228 constructAbstractSubprogramScopeDIE(AScope); 1229 } 1230 1231 TheCU.constructSubprogramScopeDIE(FnScope); 1232 if (auto *SkelCU = TheCU.getSkeleton()) 1233 if (!LScopes.getAbstractScopesList().empty()) 1234 SkelCU->constructSubprogramScopeDIE(FnScope); 1235 1236 // Clear debug info 1237 // Ownership of DbgVariables is a bit subtle - ScopeVariables owns all the 1238 // DbgVariables except those that are also in AbstractVariables (since they 1239 // can be used cross-function) 1240 InfoHolder.getScopeVariables().clear(); 1241 DbgValues.clear(); 1242 LabelsBeforeInsn.clear(); 1243 LabelsAfterInsn.clear(); 1244 PrevLabel = nullptr; 1245 CurFn = nullptr; 1246 } 1247 1248 // Register a source line with debug info. Returns the unique label that was 1249 // emitted and which provides correspondence to the source line list. 1250 void DwarfDebug::recordSourceLine(unsigned Line, unsigned Col, const MDNode *S, 1251 unsigned Flags) { 1252 StringRef Fn; 1253 StringRef Dir; 1254 unsigned Src = 1; 1255 unsigned Discriminator = 0; 1256 if (auto *Scope = cast_or_null<DIScope>(S)) { 1257 Fn = Scope->getFilename(); 1258 Dir = Scope->getDirectory(); 1259 if (auto *LBF = dyn_cast<DILexicalBlockFile>(Scope)) 1260 Discriminator = LBF->getDiscriminator(); 1261 1262 unsigned CUID = Asm->OutStreamer->getContext().getDwarfCompileUnitID(); 1263 Src = static_cast<DwarfCompileUnit &>(*InfoHolder.getUnits()[CUID]) 1264 .getOrCreateSourceID(Fn, Dir); 1265 } 1266 Asm->OutStreamer->EmitDwarfLocDirective(Src, Line, Col, Flags, 0, 1267 Discriminator, Fn); 1268 } 1269 1270 //===----------------------------------------------------------------------===// 1271 // Emit Methods 1272 //===----------------------------------------------------------------------===// 1273 1274 // Emit the debug info section. 1275 void DwarfDebug::emitDebugInfo() { 1276 DwarfFile &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 1277 Holder.emitUnits(/* UseOffsets */ false); 1278 } 1279 1280 // Emit the abbreviation section. 1281 void DwarfDebug::emitAbbreviations() { 1282 DwarfFile &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 1283 1284 Holder.emitAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevSection()); 1285 } 1286 1287 void DwarfDebug::emitAccel(DwarfAccelTable &Accel, MCSection *Section, 1288 StringRef TableName) { 1289 Accel.FinalizeTable(Asm, TableName); 1290 Asm->OutStreamer->SwitchSection(Section); 1291 1292 // Emit the full data. 1293 Accel.emit(Asm, Section->getBeginSymbol(), this); 1294 } 1295 1296 // Emit visible names into a hashed accelerator table section. 1297 void DwarfDebug::emitAccelNames() { 1298 emitAccel(AccelNames, Asm->getObjFileLowering().getDwarfAccelNamesSection(), 1299 "Names"); 1300 } 1301 1302 // Emit objective C classes and categories into a hashed accelerator table 1303 // section. 1304 void DwarfDebug::emitAccelObjC() { 1305 emitAccel(AccelObjC, Asm->getObjFileLowering().getDwarfAccelObjCSection(), 1306 "ObjC"); 1307 } 1308 1309 // Emit namespace dies into a hashed accelerator table. 1310 void DwarfDebug::emitAccelNamespaces() { 1311 emitAccel(AccelNamespace, 1312 Asm->getObjFileLowering().getDwarfAccelNamespaceSection(), 1313 "namespac"); 1314 } 1315 1316 // Emit type dies into a hashed accelerator table. 1317 void DwarfDebug::emitAccelTypes() { 1318 emitAccel(AccelTypes, Asm->getObjFileLowering().getDwarfAccelTypesSection(), 1319 "types"); 1320 } 1321 1322 // Public name handling. 1323 // The format for the various pubnames: 1324 // 1325 // dwarf pubnames - offset/name pairs where the offset is the offset into the CU 1326 // for the DIE that is named. 1327 // 1328 // gnu pubnames - offset/index value/name tuples where the offset is the offset 1329 // into the CU and the index value is computed according to the type of value 1330 // for the DIE that is named. 1331 // 1332 // For type units the offset is the offset of the skeleton DIE. For split dwarf 1333 // it's the offset within the debug_info/debug_types dwo section, however, the 1334 // reference in the pubname header doesn't change. 1335 1336 /// computeIndexValue - Compute the gdb index value for the DIE and CU. 1337 static dwarf::PubIndexEntryDescriptor computeIndexValue(DwarfUnit *CU, 1338 const DIE *Die) { 1339 dwarf::GDBIndexEntryLinkage Linkage = dwarf::GIEL_STATIC; 1340 1341 // We could have a specification DIE that has our most of our knowledge, 1342 // look for that now. 1343 if (DIEValue SpecVal = Die->findAttribute(dwarf::DW_AT_specification)) { 1344 DIE &SpecDIE = SpecVal.getDIEEntry().getEntry(); 1345 if (SpecDIE.findAttribute(dwarf::DW_AT_external)) 1346 Linkage = dwarf::GIEL_EXTERNAL; 1347 } else if (Die->findAttribute(dwarf::DW_AT_external)) 1348 Linkage = dwarf::GIEL_EXTERNAL; 1349 1350 switch (Die->getTag()) { 1351 case dwarf::DW_TAG_class_type: 1352 case dwarf::DW_TAG_structure_type: 1353 case dwarf::DW_TAG_union_type: 1354 case dwarf::DW_TAG_enumeration_type: 1355 return dwarf::PubIndexEntryDescriptor( 1356 dwarf::GIEK_TYPE, CU->getLanguage() != dwarf::DW_LANG_C_plus_plus 1357 ? dwarf::GIEL_STATIC 1358 : dwarf::GIEL_EXTERNAL); 1359 case dwarf::DW_TAG_typedef: 1360 case dwarf::DW_TAG_base_type: 1361 case dwarf::DW_TAG_subrange_type: 1362 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_TYPE, dwarf::GIEL_STATIC); 1363 case dwarf::DW_TAG_namespace: 1364 return dwarf::GIEK_TYPE; 1365 case dwarf::DW_TAG_subprogram: 1366 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_FUNCTION, Linkage); 1367 case dwarf::DW_TAG_variable: 1368 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_VARIABLE, Linkage); 1369 case dwarf::DW_TAG_enumerator: 1370 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_VARIABLE, 1371 dwarf::GIEL_STATIC); 1372 default: 1373 return dwarf::GIEK_NONE; 1374 } 1375 } 1376 1377 /// emitDebugPubNames - Emit visible names into a debug pubnames section. 1378 /// 1379 void DwarfDebug::emitDebugPubNames(bool GnuStyle) { 1380 MCSection *PSec = GnuStyle 1381 ? Asm->getObjFileLowering().getDwarfGnuPubNamesSection() 1382 : Asm->getObjFileLowering().getDwarfPubNamesSection(); 1383 1384 emitDebugPubSection(GnuStyle, PSec, "Names", 1385 &DwarfCompileUnit::getGlobalNames); 1386 } 1387 1388 void DwarfDebug::emitDebugPubSection( 1389 bool GnuStyle, MCSection *PSec, StringRef Name, 1390 const StringMap<const DIE *> &(DwarfCompileUnit::*Accessor)() const) { 1391 for (const auto &NU : CUMap) { 1392 DwarfCompileUnit *TheU = NU.second; 1393 1394 const auto &Globals = (TheU->*Accessor)(); 1395 1396 if (Globals.empty()) 1397 continue; 1398 1399 if (auto *Skeleton = TheU->getSkeleton()) 1400 TheU = Skeleton; 1401 1402 // Start the dwarf pubnames section. 1403 Asm->OutStreamer->SwitchSection(PSec); 1404 1405 // Emit the header. 1406 Asm->OutStreamer->AddComment("Length of Public " + Name + " Info"); 1407 MCSymbol *BeginLabel = Asm->createTempSymbol("pub" + Name + "_begin"); 1408 MCSymbol *EndLabel = Asm->createTempSymbol("pub" + Name + "_end"); 1409 Asm->EmitLabelDifference(EndLabel, BeginLabel, 4); 1410 1411 Asm->OutStreamer->EmitLabel(BeginLabel); 1412 1413 Asm->OutStreamer->AddComment("DWARF Version"); 1414 Asm->EmitInt16(dwarf::DW_PUBNAMES_VERSION); 1415 1416 Asm->OutStreamer->AddComment("Offset of Compilation Unit Info"); 1417 Asm->emitSectionOffset(TheU->getLabelBegin()); 1418 1419 Asm->OutStreamer->AddComment("Compilation Unit Length"); 1420 Asm->EmitInt32(TheU->getLength()); 1421 1422 // Emit the pubnames for this compilation unit. 1423 for (const auto &GI : Globals) { 1424 const char *Name = GI.getKeyData(); 1425 const DIE *Entity = GI.second; 1426 1427 Asm->OutStreamer->AddComment("DIE offset"); 1428 Asm->EmitInt32(Entity->getOffset()); 1429 1430 if (GnuStyle) { 1431 dwarf::PubIndexEntryDescriptor Desc = computeIndexValue(TheU, Entity); 1432 Asm->OutStreamer->AddComment( 1433 Twine("Kind: ") + dwarf::GDBIndexEntryKindString(Desc.Kind) + ", " + 1434 dwarf::GDBIndexEntryLinkageString(Desc.Linkage)); 1435 Asm->EmitInt8(Desc.toBits()); 1436 } 1437 1438 Asm->OutStreamer->AddComment("External Name"); 1439 Asm->OutStreamer->EmitBytes(StringRef(Name, GI.getKeyLength() + 1)); 1440 } 1441 1442 Asm->OutStreamer->AddComment("End Mark"); 1443 Asm->EmitInt32(0); 1444 Asm->OutStreamer->EmitLabel(EndLabel); 1445 } 1446 } 1447 1448 void DwarfDebug::emitDebugPubTypes(bool GnuStyle) { 1449 MCSection *PSec = GnuStyle 1450 ? Asm->getObjFileLowering().getDwarfGnuPubTypesSection() 1451 : Asm->getObjFileLowering().getDwarfPubTypesSection(); 1452 1453 emitDebugPubSection(GnuStyle, PSec, "Types", 1454 &DwarfCompileUnit::getGlobalTypes); 1455 } 1456 1457 // Emit visible names into a debug str section. 1458 void DwarfDebug::emitDebugStr() { 1459 DwarfFile &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 1460 Holder.emitStrings(Asm->getObjFileLowering().getDwarfStrSection()); 1461 } 1462 1463 void DwarfDebug::emitDebugLocEntry(ByteStreamer &Streamer, 1464 const DebugLocStream::Entry &Entry) { 1465 auto &&Comments = DebugLocs.getComments(Entry); 1466 auto Comment = Comments.begin(); 1467 auto End = Comments.end(); 1468 for (uint8_t Byte : DebugLocs.getBytes(Entry)) 1469 Streamer.EmitInt8(Byte, Comment != End ? *(Comment++) : ""); 1470 } 1471 1472 static void emitDebugLocValue(const AsmPrinter &AP, const DIBasicType *BT, 1473 ByteStreamer &Streamer, 1474 const DebugLocEntry::Value &Value, 1475 unsigned PieceOffsetInBits) { 1476 DebugLocDwarfExpression DwarfExpr(*AP.MF->getSubtarget().getRegisterInfo(), 1477 AP.getDwarfDebug()->getDwarfVersion(), 1478 Streamer); 1479 // Regular entry. 1480 if (Value.isInt()) { 1481 if (BT && (BT->getEncoding() == dwarf::DW_ATE_signed || 1482 BT->getEncoding() == dwarf::DW_ATE_signed_char)) 1483 DwarfExpr.AddSignedConstant(Value.getInt()); 1484 else 1485 DwarfExpr.AddUnsignedConstant(Value.getInt()); 1486 } else if (Value.isLocation()) { 1487 MachineLocation Loc = Value.getLoc(); 1488 const DIExpression *Expr = Value.getExpression(); 1489 if (!Expr || !Expr->getNumElements()) 1490 // Regular entry. 1491 AP.EmitDwarfRegOp(Streamer, Loc); 1492 else { 1493 // Complex address entry. 1494 if (Loc.getOffset()) { 1495 DwarfExpr.AddMachineRegIndirect(Loc.getReg(), Loc.getOffset()); 1496 DwarfExpr.AddExpression(Expr->expr_op_begin(), Expr->expr_op_end(), 1497 PieceOffsetInBits); 1498 } else 1499 DwarfExpr.AddMachineRegExpression(Expr, Loc.getReg(), 1500 PieceOffsetInBits); 1501 } 1502 } 1503 // else ... ignore constant fp. There is not any good way to 1504 // to represent them here in dwarf. 1505 // FIXME: ^ 1506 } 1507 1508 void DebugLocEntry::finalize(const AsmPrinter &AP, DebugLocStream &Locs, 1509 const DIBasicType *BT) { 1510 Locs.startEntry(Begin, End); 1511 BufferByteStreamer Streamer = Locs.getStreamer(); 1512 const DebugLocEntry::Value &Value = Values[0]; 1513 if (Value.isBitPiece()) { 1514 // Emit all pieces that belong to the same variable and range. 1515 assert(std::all_of(Values.begin(), Values.end(), [](DebugLocEntry::Value P) { 1516 return P.isBitPiece(); 1517 }) && "all values are expected to be pieces"); 1518 assert(std::is_sorted(Values.begin(), Values.end()) && 1519 "pieces are expected to be sorted"); 1520 1521 unsigned Offset = 0; 1522 for (auto Piece : Values) { 1523 const DIExpression *Expr = Piece.getExpression(); 1524 unsigned PieceOffset = Expr->getBitPieceOffset(); 1525 unsigned PieceSize = Expr->getBitPieceSize(); 1526 assert(Offset <= PieceOffset && "overlapping or duplicate pieces"); 1527 if (Offset < PieceOffset) { 1528 // The DWARF spec seriously mandates pieces with no locations for gaps. 1529 DebugLocDwarfExpression Expr(*AP.MF->getSubtarget().getRegisterInfo(), 1530 AP.getDwarfDebug()->getDwarfVersion(), 1531 Streamer); 1532 Expr.AddOpPiece(PieceOffset-Offset, 0); 1533 Offset += PieceOffset-Offset; 1534 } 1535 Offset += PieceSize; 1536 1537 emitDebugLocValue(AP, BT, Streamer, Piece, PieceOffset); 1538 } 1539 } else { 1540 assert(Values.size() == 1 && "only pieces may have >1 value"); 1541 emitDebugLocValue(AP, BT, Streamer, Value, 0); 1542 } 1543 } 1544 1545 void DwarfDebug::emitDebugLocEntryLocation(const DebugLocStream::Entry &Entry) { 1546 // Emit the size. 1547 Asm->OutStreamer->AddComment("Loc expr size"); 1548 Asm->EmitInt16(DebugLocs.getBytes(Entry).size()); 1549 1550 // Emit the entry. 1551 APByteStreamer Streamer(*Asm); 1552 emitDebugLocEntry(Streamer, Entry); 1553 } 1554 1555 // Emit locations into the debug loc section. 1556 void DwarfDebug::emitDebugLoc() { 1557 // Start the dwarf loc section. 1558 Asm->OutStreamer->SwitchSection( 1559 Asm->getObjFileLowering().getDwarfLocSection()); 1560 unsigned char Size = Asm->getDataLayout().getPointerSize(); 1561 for (const auto &List : DebugLocs.getLists()) { 1562 Asm->OutStreamer->EmitLabel(List.Label); 1563 const DwarfCompileUnit *CU = List.CU; 1564 for (const auto &Entry : DebugLocs.getEntries(List)) { 1565 if (Entry.BeginSym == Entry.EndSym) 1566 continue; 1567 // Set up the range. This range is relative to the entry point of the 1568 // compile unit. This is a hard coded 0 for low_pc when we're emitting 1569 // ranges, or the DW_AT_low_pc on the compile unit otherwise. 1570 if (auto *Base = CU->getBaseAddress()) { 1571 Asm->EmitLabelDifference(Entry.BeginSym, Base, Size); 1572 Asm->EmitLabelDifference(Entry.EndSym, Base, Size); 1573 } else { 1574 Asm->OutStreamer->EmitSymbolValue(Entry.BeginSym, Size); 1575 Asm->OutStreamer->EmitSymbolValue(Entry.EndSym, Size); 1576 } 1577 1578 emitDebugLocEntryLocation(Entry); 1579 } 1580 Asm->OutStreamer->EmitIntValue(0, Size); 1581 Asm->OutStreamer->EmitIntValue(0, Size); 1582 } 1583 } 1584 1585 void DwarfDebug::emitDebugLocDWO() { 1586 Asm->OutStreamer->SwitchSection( 1587 Asm->getObjFileLowering().getDwarfLocDWOSection()); 1588 for (const auto &List : DebugLocs.getLists()) { 1589 Asm->OutStreamer->EmitLabel(List.Label); 1590 for (const auto &Entry : DebugLocs.getEntries(List)) { 1591 // Just always use start_length for now - at least that's one address 1592 // rather than two. We could get fancier and try to, say, reuse an 1593 // address we know we've emitted elsewhere (the start of the function? 1594 // The start of the CU or CU subrange that encloses this range?) 1595 Asm->EmitInt8(dwarf::DW_LLE_start_length_entry); 1596 unsigned idx = AddrPool.getIndex(Entry.BeginSym); 1597 Asm->EmitULEB128(idx); 1598 Asm->EmitLabelDifference(Entry.EndSym, Entry.BeginSym, 4); 1599 1600 emitDebugLocEntryLocation(Entry); 1601 } 1602 Asm->EmitInt8(dwarf::DW_LLE_end_of_list_entry); 1603 } 1604 } 1605 1606 struct ArangeSpan { 1607 const MCSymbol *Start, *End; 1608 }; 1609 1610 // Emit a debug aranges section, containing a CU lookup for any 1611 // address we can tie back to a CU. 1612 void DwarfDebug::emitDebugARanges() { 1613 // Provides a unique id per text section. 1614 MapVector<MCSection *, SmallVector<SymbolCU, 8>> SectionMap; 1615 1616 // Filter labels by section. 1617 for (const SymbolCU &SCU : ArangeLabels) { 1618 if (SCU.Sym->isInSection()) { 1619 // Make a note of this symbol and it's section. 1620 MCSection *Section = &SCU.Sym->getSection(); 1621 if (!Section->getKind().isMetadata()) 1622 SectionMap[Section].push_back(SCU); 1623 } else { 1624 // Some symbols (e.g. common/bss on mach-o) can have no section but still 1625 // appear in the output. This sucks as we rely on sections to build 1626 // arange spans. We can do it without, but it's icky. 1627 SectionMap[nullptr].push_back(SCU); 1628 } 1629 } 1630 1631 // Add terminating symbols for each section. 1632 for (const auto &I : SectionMap) { 1633 MCSection *Section = I.first; 1634 MCSymbol *Sym = nullptr; 1635 1636 if (Section) 1637 Sym = Asm->OutStreamer->endSection(Section); 1638 1639 // Insert a final terminator. 1640 SectionMap[Section].push_back(SymbolCU(nullptr, Sym)); 1641 } 1642 1643 DenseMap<DwarfCompileUnit *, std::vector<ArangeSpan>> Spans; 1644 1645 for (auto &I : SectionMap) { 1646 const MCSection *Section = I.first; 1647 SmallVector<SymbolCU, 8> &List = I.second; 1648 if (List.size() < 2) 1649 continue; 1650 1651 // If we have no section (e.g. common), just write out 1652 // individual spans for each symbol. 1653 if (!Section) { 1654 for (const SymbolCU &Cur : List) { 1655 ArangeSpan Span; 1656 Span.Start = Cur.Sym; 1657 Span.End = nullptr; 1658 if (Cur.CU) 1659 Spans[Cur.CU].push_back(Span); 1660 } 1661 continue; 1662 } 1663 1664 // Sort the symbols by offset within the section. 1665 std::sort(List.begin(), List.end(), 1666 [&](const SymbolCU &A, const SymbolCU &B) { 1667 unsigned IA = A.Sym ? Asm->OutStreamer->GetSymbolOrder(A.Sym) : 0; 1668 unsigned IB = B.Sym ? Asm->OutStreamer->GetSymbolOrder(B.Sym) : 0; 1669 1670 // Symbols with no order assigned should be placed at the end. 1671 // (e.g. section end labels) 1672 if (IA == 0) 1673 return false; 1674 if (IB == 0) 1675 return true; 1676 return IA < IB; 1677 }); 1678 1679 // Build spans between each label. 1680 const MCSymbol *StartSym = List[0].Sym; 1681 for (size_t n = 1, e = List.size(); n < e; n++) { 1682 const SymbolCU &Prev = List[n - 1]; 1683 const SymbolCU &Cur = List[n]; 1684 1685 // Try and build the longest span we can within the same CU. 1686 if (Cur.CU != Prev.CU) { 1687 ArangeSpan Span; 1688 Span.Start = StartSym; 1689 Span.End = Cur.Sym; 1690 Spans[Prev.CU].push_back(Span); 1691 StartSym = Cur.Sym; 1692 } 1693 } 1694 } 1695 1696 // Start the dwarf aranges section. 1697 Asm->OutStreamer->SwitchSection( 1698 Asm->getObjFileLowering().getDwarfARangesSection()); 1699 1700 unsigned PtrSize = Asm->getDataLayout().getPointerSize(); 1701 1702 // Build a list of CUs used. 1703 std::vector<DwarfCompileUnit *> CUs; 1704 for (const auto &it : Spans) { 1705 DwarfCompileUnit *CU = it.first; 1706 CUs.push_back(CU); 1707 } 1708 1709 // Sort the CU list (again, to ensure consistent output order). 1710 std::sort(CUs.begin(), CUs.end(), [](const DwarfUnit *A, const DwarfUnit *B) { 1711 return A->getUniqueID() < B->getUniqueID(); 1712 }); 1713 1714 // Emit an arange table for each CU we used. 1715 for (DwarfCompileUnit *CU : CUs) { 1716 std::vector<ArangeSpan> &List = Spans[CU]; 1717 1718 // Describe the skeleton CU's offset and length, not the dwo file's. 1719 if (auto *Skel = CU->getSkeleton()) 1720 CU = Skel; 1721 1722 // Emit size of content not including length itself. 1723 unsigned ContentSize = 1724 sizeof(int16_t) + // DWARF ARange version number 1725 sizeof(int32_t) + // Offset of CU in the .debug_info section 1726 sizeof(int8_t) + // Pointer Size (in bytes) 1727 sizeof(int8_t); // Segment Size (in bytes) 1728 1729 unsigned TupleSize = PtrSize * 2; 1730 1731 // 7.20 in the Dwarf specs requires the table to be aligned to a tuple. 1732 unsigned Padding = 1733 OffsetToAlignment(sizeof(int32_t) + ContentSize, TupleSize); 1734 1735 ContentSize += Padding; 1736 ContentSize += (List.size() + 1) * TupleSize; 1737 1738 // For each compile unit, write the list of spans it covers. 1739 Asm->OutStreamer->AddComment("Length of ARange Set"); 1740 Asm->EmitInt32(ContentSize); 1741 Asm->OutStreamer->AddComment("DWARF Arange version number"); 1742 Asm->EmitInt16(dwarf::DW_ARANGES_VERSION); 1743 Asm->OutStreamer->AddComment("Offset Into Debug Info Section"); 1744 Asm->emitSectionOffset(CU->getLabelBegin()); 1745 Asm->OutStreamer->AddComment("Address Size (in bytes)"); 1746 Asm->EmitInt8(PtrSize); 1747 Asm->OutStreamer->AddComment("Segment Size (in bytes)"); 1748 Asm->EmitInt8(0); 1749 1750 Asm->OutStreamer->EmitFill(Padding, 0xff); 1751 1752 for (const ArangeSpan &Span : List) { 1753 Asm->EmitLabelReference(Span.Start, PtrSize); 1754 1755 // Calculate the size as being from the span start to it's end. 1756 if (Span.End) { 1757 Asm->EmitLabelDifference(Span.End, Span.Start, PtrSize); 1758 } else { 1759 // For symbols without an end marker (e.g. common), we 1760 // write a single arange entry containing just that one symbol. 1761 uint64_t Size = SymSize[Span.Start]; 1762 if (Size == 0) 1763 Size = 1; 1764 1765 Asm->OutStreamer->EmitIntValue(Size, PtrSize); 1766 } 1767 } 1768 1769 Asm->OutStreamer->AddComment("ARange terminator"); 1770 Asm->OutStreamer->EmitIntValue(0, PtrSize); 1771 Asm->OutStreamer->EmitIntValue(0, PtrSize); 1772 } 1773 } 1774 1775 // Emit visible names into a debug ranges section. 1776 void DwarfDebug::emitDebugRanges() { 1777 // Start the dwarf ranges section. 1778 Asm->OutStreamer->SwitchSection( 1779 Asm->getObjFileLowering().getDwarfRangesSection()); 1780 1781 // Size for our labels. 1782 unsigned char Size = Asm->getDataLayout().getPointerSize(); 1783 1784 // Grab the specific ranges for the compile units in the module. 1785 for (const auto &I : CUMap) { 1786 DwarfCompileUnit *TheCU = I.second; 1787 1788 if (auto *Skel = TheCU->getSkeleton()) 1789 TheCU = Skel; 1790 1791 // Iterate over the misc ranges for the compile units in the module. 1792 for (const RangeSpanList &List : TheCU->getRangeLists()) { 1793 // Emit our symbol so we can find the beginning of the range. 1794 Asm->OutStreamer->EmitLabel(List.getSym()); 1795 1796 for (const RangeSpan &Range : List.getRanges()) { 1797 const MCSymbol *Begin = Range.getStart(); 1798 const MCSymbol *End = Range.getEnd(); 1799 assert(Begin && "Range without a begin symbol?"); 1800 assert(End && "Range without an end symbol?"); 1801 if (auto *Base = TheCU->getBaseAddress()) { 1802 Asm->EmitLabelDifference(Begin, Base, Size); 1803 Asm->EmitLabelDifference(End, Base, Size); 1804 } else { 1805 Asm->OutStreamer->EmitSymbolValue(Begin, Size); 1806 Asm->OutStreamer->EmitSymbolValue(End, Size); 1807 } 1808 } 1809 1810 // And terminate the list with two 0 values. 1811 Asm->OutStreamer->EmitIntValue(0, Size); 1812 Asm->OutStreamer->EmitIntValue(0, Size); 1813 } 1814 } 1815 } 1816 1817 // DWARF5 Experimental Separate Dwarf emitters. 1818 1819 void DwarfDebug::initSkeletonUnit(const DwarfUnit &U, DIE &Die, 1820 std::unique_ptr<DwarfUnit> NewU) { 1821 NewU->addString(Die, dwarf::DW_AT_GNU_dwo_name, 1822 U.getCUNode()->getSplitDebugFilename()); 1823 1824 if (!CompilationDir.empty()) 1825 NewU->addString(Die, dwarf::DW_AT_comp_dir, CompilationDir); 1826 1827 addGnuPubAttributes(*NewU, Die); 1828 1829 SkeletonHolder.addUnit(std::move(NewU)); 1830 } 1831 1832 // This DIE has the following attributes: DW_AT_comp_dir, DW_AT_stmt_list, 1833 // DW_AT_low_pc, DW_AT_high_pc, DW_AT_ranges, DW_AT_dwo_name, DW_AT_dwo_id, 1834 // DW_AT_addr_base, DW_AT_ranges_base. 1835 DwarfCompileUnit &DwarfDebug::constructSkeletonCU(const DwarfCompileUnit &CU) { 1836 1837 auto OwnedUnit = make_unique<DwarfCompileUnit>( 1838 CU.getUniqueID(), CU.getCUNode(), Asm, this, &SkeletonHolder); 1839 DwarfCompileUnit &NewCU = *OwnedUnit; 1840 NewCU.initSection(Asm->getObjFileLowering().getDwarfInfoSection()); 1841 1842 NewCU.initStmtList(); 1843 1844 initSkeletonUnit(CU, NewCU.getUnitDie(), std::move(OwnedUnit)); 1845 1846 return NewCU; 1847 } 1848 1849 // Emit the .debug_info.dwo section for separated dwarf. This contains the 1850 // compile units that would normally be in debug_info. 1851 void DwarfDebug::emitDebugInfoDWO() { 1852 assert(useSplitDwarf() && "No split dwarf debug info?"); 1853 // Don't emit relocations into the dwo file. 1854 InfoHolder.emitUnits(/* UseOffsets */ true); 1855 } 1856 1857 // Emit the .debug_abbrev.dwo section for separated dwarf. This contains the 1858 // abbreviations for the .debug_info.dwo section. 1859 void DwarfDebug::emitDebugAbbrevDWO() { 1860 assert(useSplitDwarf() && "No split dwarf?"); 1861 InfoHolder.emitAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevDWOSection()); 1862 } 1863 1864 void DwarfDebug::emitDebugLineDWO() { 1865 assert(useSplitDwarf() && "No split dwarf?"); 1866 Asm->OutStreamer->SwitchSection( 1867 Asm->getObjFileLowering().getDwarfLineDWOSection()); 1868 SplitTypeUnitFileTable.Emit(*Asm->OutStreamer); 1869 } 1870 1871 // Emit the .debug_str.dwo section for separated dwarf. This contains the 1872 // string section and is identical in format to traditional .debug_str 1873 // sections. 1874 void DwarfDebug::emitDebugStrDWO() { 1875 assert(useSplitDwarf() && "No split dwarf?"); 1876 MCSection *OffSec = Asm->getObjFileLowering().getDwarfStrOffDWOSection(); 1877 InfoHolder.emitStrings(Asm->getObjFileLowering().getDwarfStrDWOSection(), 1878 OffSec); 1879 } 1880 1881 MCDwarfDwoLineTable *DwarfDebug::getDwoLineTable(const DwarfCompileUnit &CU) { 1882 if (!useSplitDwarf()) 1883 return nullptr; 1884 if (SingleCU) 1885 SplitTypeUnitFileTable.setCompilationDir(CU.getCUNode()->getDirectory()); 1886 return &SplitTypeUnitFileTable; 1887 } 1888 1889 static uint64_t makeTypeSignature(StringRef Identifier) { 1890 MD5 Hash; 1891 Hash.update(Identifier); 1892 // ... take the least significant 8 bytes and return those. Our MD5 1893 // implementation always returns its results in little endian, swap bytes 1894 // appropriately. 1895 MD5::MD5Result Result; 1896 Hash.final(Result); 1897 return support::endian::read64le(Result + 8); 1898 } 1899 1900 void DwarfDebug::addDwarfTypeUnitType(DwarfCompileUnit &CU, 1901 StringRef Identifier, DIE &RefDie, 1902 const DICompositeType *CTy) { 1903 // Fast path if we're building some type units and one has already used the 1904 // address pool we know we're going to throw away all this work anyway, so 1905 // don't bother building dependent types. 1906 if (!TypeUnitsUnderConstruction.empty() && AddrPool.hasBeenUsed()) 1907 return; 1908 1909 const DwarfTypeUnit *&TU = DwarfTypeUnits[CTy]; 1910 if (TU) { 1911 CU.addDIETypeSignature(RefDie, *TU); 1912 return; 1913 } 1914 1915 bool TopLevelType = TypeUnitsUnderConstruction.empty(); 1916 AddrPool.resetUsedFlag(); 1917 1918 auto OwnedUnit = make_unique<DwarfTypeUnit>( 1919 InfoHolder.getUnits().size() + TypeUnitsUnderConstruction.size(), CU, Asm, 1920 this, &InfoHolder, getDwoLineTable(CU)); 1921 DwarfTypeUnit &NewTU = *OwnedUnit; 1922 DIE &UnitDie = NewTU.getUnitDie(); 1923 TU = &NewTU; 1924 TypeUnitsUnderConstruction.push_back( 1925 std::make_pair(std::move(OwnedUnit), CTy)); 1926 1927 NewTU.addUInt(UnitDie, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 1928 CU.getLanguage()); 1929 1930 uint64_t Signature = makeTypeSignature(Identifier); 1931 NewTU.setTypeSignature(Signature); 1932 1933 if (useSplitDwarf()) 1934 NewTU.initSection(Asm->getObjFileLowering().getDwarfTypesDWOSection()); 1935 else { 1936 CU.applyStmtList(UnitDie); 1937 NewTU.initSection( 1938 Asm->getObjFileLowering().getDwarfTypesSection(Signature)); 1939 } 1940 1941 NewTU.setType(NewTU.createTypeDIE(CTy)); 1942 1943 if (TopLevelType) { 1944 auto TypeUnitsToAdd = std::move(TypeUnitsUnderConstruction); 1945 TypeUnitsUnderConstruction.clear(); 1946 1947 // Types referencing entries in the address table cannot be placed in type 1948 // units. 1949 if (AddrPool.hasBeenUsed()) { 1950 1951 // Remove all the types built while building this type. 1952 // This is pessimistic as some of these types might not be dependent on 1953 // the type that used an address. 1954 for (const auto &TU : TypeUnitsToAdd) 1955 DwarfTypeUnits.erase(TU.second); 1956 1957 // Construct this type in the CU directly. 1958 // This is inefficient because all the dependent types will be rebuilt 1959 // from scratch, including building them in type units, discovering that 1960 // they depend on addresses, throwing them out and rebuilding them. 1961 CU.constructTypeDIE(RefDie, cast<DICompositeType>(CTy)); 1962 return; 1963 } 1964 1965 // If the type wasn't dependent on fission addresses, finish adding the type 1966 // and all its dependent types. 1967 for (auto &TU : TypeUnitsToAdd) 1968 InfoHolder.addUnit(std::move(TU.first)); 1969 } 1970 CU.addDIETypeSignature(RefDie, NewTU); 1971 } 1972 1973 // Accelerator table mutators - add each name along with its companion 1974 // DIE to the proper table while ensuring that the name that we're going 1975 // to reference is in the string table. We do this since the names we 1976 // add may not only be identical to the names in the DIE. 1977 void DwarfDebug::addAccelName(StringRef Name, const DIE &Die) { 1978 if (!useDwarfAccelTables()) 1979 return; 1980 AccelNames.AddName(InfoHolder.getStringPool().getEntry(*Asm, Name), &Die); 1981 } 1982 1983 void DwarfDebug::addAccelObjC(StringRef Name, const DIE &Die) { 1984 if (!useDwarfAccelTables()) 1985 return; 1986 AccelObjC.AddName(InfoHolder.getStringPool().getEntry(*Asm, Name), &Die); 1987 } 1988 1989 void DwarfDebug::addAccelNamespace(StringRef Name, const DIE &Die) { 1990 if (!useDwarfAccelTables()) 1991 return; 1992 AccelNamespace.AddName(InfoHolder.getStringPool().getEntry(*Asm, Name), &Die); 1993 } 1994 1995 void DwarfDebug::addAccelType(StringRef Name, const DIE &Die, char Flags) { 1996 if (!useDwarfAccelTables()) 1997 return; 1998 AccelTypes.AddName(InfoHolder.getStringPool().getEntry(*Asm, Name), &Die); 1999 } 2000